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肥胖预测:腰围准确性的新型机器学习洞察。

Obesity prediction: Novel machine learning insights into waist circumference accuracy.

机构信息

Department of Biomedical Engineering, Johns Hopkins University, Baltimore, MD, 21287, USA.

Department of Electrical and Computer Engineering, Whiting School of Engineering, Johns Hopkins University, Baltimore, MD, 21287, USA.

出版信息

Diabetes Metab Syndr. 2024 Aug;18(8):103113. doi: 10.1016/j.dsx.2024.103113. Epub 2024 Aug 29.

Abstract

AIMS

This study aims to enhance the precision of obesity risk assessments by improving the accuracy of waist circumference predictions using machine learning techniques.

METHODS

We utilized data from the NHANES and Look AHEAD studies, applying machine learning algorithms augmented with uncertainty quantification. Our approach centered on conformal prediction techniques, which provide a methodological basis for generating prediction intervals that reflect uncertainty levels. This method allows for constructing intervals expected to contain the true waist circumference values with a high degree of probability.

RESULTS

The application of conformal predictions yielded high coverage rates, achieving 0.955 for men and 0.954 for women in the NHANES dataset. These rates surpassed the expected performance benchmarks and demonstrated robustness when applied to the Look AHEAD dataset, maintaining coverage rates of 0.951 for men and 0.952 for women. Traditional point prediction models did not show such high consistency or reliability.

CONCLUSIONS

The findings support the integration of waist circumference into standard clinical practice for obesity-related risk assessments using machine learning approaches.

摘要

目的

本研究旨在通过机器学习技术提高腰围预测的准确性,从而提高肥胖风险评估的精度。

方法

我们利用 NHANES 和 Look AHEAD 研究的数据,应用机器学习算法并结合不确定性量化。我们的方法侧重于保形预测技术,为生成反映不确定性水平的预测区间提供了方法学基础。这种方法可以构建预期包含真实腰围值的区间,具有很高的概率。

结果

保形预测的应用产生了很高的覆盖率,在 NHANES 数据集上,男性为 0.955,女性为 0.954。这些比率超过了预期的性能基准,并在应用于 Look AHEAD 数据集时表现出稳健性,男性覆盖率为 0.951,女性覆盖率为 0.952。传统的点预测模型没有显示出如此高的一致性或可靠性。

结论

这些发现支持将腰围纳入基于机器学习的肥胖相关风险评估的标准临床实践。

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